Ko Frank K, Jovicic Jovan
Department of Materials Science and Engineering, Drexel University, Philadelphia, Pennsylvania 19104, USA.
Biomacromolecules. 2004 May-Jun;5(3):780-5. doi: 10.1021/bm0345099.
With a unique combination of strength and toughness among materials, spider silk is the model for engineering materials. This paper presents the stress-strain behavior of Nephila clavipes spider silk under tension, transverse compression, and torsional deformation obtained by a battery of micro testing equipment. The experimental results showed significantly higher toughness than the state-of-the-art fibers in tension and in transverse compression. Higher shear modulus was also observed for the spider silk comparing to other liquid crystalline fibers such as aramid fibers. On the basis of the experimental results finite element analysis is used to simulate static and dynamic properties of spider web and to explore the role of both material properties and architectural design in its structural integrity and mechanical performance.
蜘蛛丝在材料中兼具独特的强度和韧性,是工程材料的典范。本文介绍了利用一系列微观测试设备获得的棒络新妇蛛蜘蛛丝在拉伸、横向压缩和扭转变形下的应力-应变行为。实验结果表明,在拉伸和横向压缩方面,其韧性显著高于现有最先进的纤维。与芳纶纤维等其他液晶纤维相比,蜘蛛丝还具有更高的剪切模量。基于实验结果,采用有限元分析来模拟蜘蛛网的静态和动态特性,并探讨材料特性和结构设计在其结构完整性和力学性能中的作用。